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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Are Alkyl Sulfate-Based Protic and Aprotic Ionic Liquids Stable with Water and Alcohols? A Thermodynamic Approach
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Are Alkyl Sulfate-Based Protic and Aprotic Ionic Liquids Stable with Water and Alcohols? A Thermodynamic Approach

机译:基于烷基硫酸盐的质子和非质子离子液体是否对水和醇稳定?热力学方法

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摘要

The knowledge of the chemical stability as a function of the temperature of ionic liquids (ILs) in the presence of other molecules such as water is crucial prior to developing any industrial application and process involving these novel materials. Fluid phase equilibria and density over a large range of temperature and composition can give basic information on IL purity and chemical stability. The IL scientific community requires accurate measurements accessed from reference data. In this work, the stability of different alkyl sulfate-based ILs in the presence of water and various alcohols (methanol, ethanol, 1-butanol, and 1-octanol) was investigated to understand their stability as a function of temperature up to 423.15 K over the hydrolysis and transesterification reactions, respectively. From this investigation, it was clear that methyl sulfate- and ethyl sulfate-based ILs are not stable in the presence of water, since hydrolysis of the methyl sulfate or ethyl sulfate anions to methanol or ethanol and hydrogenate anion is undoubtedly observed. Such observations could help to explain the differences observed for the physical properties published in the literature by various groups. Furthermore, it appears that a thermodynamic equilibrium process drives these hydrolysis reactions. In other words, these hydrolysis reactions are in fact reversible, providing the possibility to re-form the desired alkyl sulfate anions by a simple transesterification reaction between hydrogen sulfate-based ILs and the corresponding alcohol (methanol or ethanol). Additionally, butyl sulfate- and octyl sulfate-based ILs appear to follow this pattern but under more drastic conditions. In these systems, hydrolysis is observed in both cases after several months for temperatures up to 423 K in the presence of water. Therein, the partial miscibility of hydrogen sulfate-based ILs with long chain alcohols (l-butanol and 1-octanol) can help to explain the enhanced hydrolytic stability of the butyl sulfate- and octyl sulfate-based ILs compared with the methyl or ethyl sulfate systems. Additionally, rapid transesterification reactions are observed during liquid-liquid equilibrium studies as a function of temperature for binary systems of (hydrogen sulfate-based ionic liquids + 1-butanol) and of (hydrogen sulfate-based ionic liquids + 1-octanol). Finally, this atom-efficient catalyst-free transesterification reaction between hydrogen sulfate-based ILs and alcohol was then tested to provide a novel way to synthesize new ILs with various anion structures containing the alkyl sulfate group.
机译:在开发涉及这些新型材料的任何工业应用和工艺之前,了解在存在其他分子(例如水)时化学稳定性随离子液体(ILs)温度变化的知识至关重要。在较大的温度和组成范围内,液相平衡和密度可以提供有关IL纯度和化学稳定性的基本信息。 IL科学界要求从参考数据中获取准确的测量值。在这项工作中,研究了在水和各种醇(甲醇,乙醇,1-丁醇和1-辛醇)存在下,不同的基于烷基硫酸盐的离子液体的稳定性,以了解它们在高达423.15 K的温度下的稳定性。分别进行水解和酯交换反应。从该研究中可以清楚地看出,基于硫酸甲酯和硫酸乙酯的离子液体在水的存在下是不稳定的,因为毫无疑问地观察到了硫酸甲酯或硫酸乙酯阴离子水解为甲醇或乙醇以及氢化阴离子。这样的观察结果可以帮助解释不同群体在文献中发表的物理性能的差异。此外,似乎热力学平衡过程驱动了这些水解反应。换句话说,这些水解反应实际上是可逆的,从而提供了通过基于硫酸氢的IL与相应的醇(甲醇或乙醇)之间的简单酯交换反应来重新形成所需的烷基硫酸盐阴离子的可能性。此外,基于硫酸丁酯和辛基硫酸酯的IL似乎遵循这种模式,但条件更为苛刻。在这些系统中,两种情况下,在水存在下,温度高达423 K的情况下,几个月后都观察到水解。其中,基于硫酸氢盐的ILs与长链醇(1-丁醇和1-辛醇)的部分混溶性可以帮助解释与基于硫酸丁酯和辛基硫酸盐的ILs相比,基于硫酸丁酯和辛基硫酸盐的ILs水解稳定性更高。系统。另外,在液-液平衡研究期间,观察到快速的酯交换反应随温度的变化而变化(基于硫酸氢盐的离子液体+ 1-丁醇)和(基于硫酸氢盐的离子液体+ 1-辛醇)的二元体系。最后,然后测试了基于硫酸氢的IL与醇之间的无原子效率的无催化剂酯交换反应,从而提供了一种新颖的方法来合成具有包含烷基硫酸盐基团的各种阴离子结构的新IL。

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